The analysis for the transition dynamics of sleep states through the driving effects of the cholinergic inputs to hippocampal oscillations

IF 2.6 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Physics Letters A Pub Date : 2025-01-28 DOI:10.1016/j.physleta.2024.130160
Zhengyong Song , Denggui Fan , Songan Hou , Qingyun Wang
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Abstract

Cholinergic inputs from the medial septum (MS) affect hippocampal memory during sleep. However, computational modeling of sleep transitions is currently lacking. Here, we use eight coupled rate equations to build a septo-hippocampal cholinergic network. The numerical results indicate that enhanced cholinergic inputs in the model can effectively suppress hippocampal ripple oscillations and shift to theta states. This exchange of dominant rhythms reflects sleep state transitions and corresponds to the results of physiological experiments. By analyzing the dynamical mechanisms underlying this transition, we found that this change originates from a bifurcation phenomenon within the hippocampal network. Additionally, we found that the adaptive gain parameter can effectively modulate the up-state oscillatory activity of the hippocampal network and exhibits greater sensitivity during rapid eye movement (REM) sleep. These results will bring possible insights into computational characterizations and transformations of different sleep states, and provide a theoretical basis for neuromodulation in memory formation.
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通过胆碱能输入对海马振荡的驱动效应分析睡眠状态的转换动力学
内隔的胆碱能输入影响睡眠时海马的记忆。然而,目前缺乏睡眠转换的计算模型。在这里,我们使用8个耦合速率方程来构建隔海-海马胆碱能网络。数值结果表明,模型中增强的胆碱能输入能有效抑制海马纹波振荡并向θ波状态转移。这种优势节律的交换反映了睡眠状态的转变,并与生理实验的结果相一致。通过分析这种转变背后的动力机制,我们发现这种变化源于海马体网络内的分岔现象。此外,我们发现自适应增益参数可以有效地调节海马网络的上状态振荡活动,并在快速眼动(REM)睡眠期间表现出更大的敏感性。这些结果将为不同睡眠状态的计算表征和转换提供可能的见解,并为记忆形成中的神经调节提供理论基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physics Letters A
Physics Letters A 物理-物理:综合
CiteScore
5.10
自引率
3.80%
发文量
493
审稿时长
30 days
期刊介绍: Physics Letters A offers an exciting publication outlet for novel and frontier physics. It encourages the submission of new research on: condensed matter physics, theoretical physics, nonlinear science, statistical physics, mathematical and computational physics, general and cross-disciplinary physics (including foundations), atomic, molecular and cluster physics, plasma and fluid physics, optical physics, biological physics and nanoscience. No articles on High Energy and Nuclear Physics are published in Physics Letters A. The journal''s high standard and wide dissemination ensures a broad readership amongst the physics community. Rapid publication times and flexible length restrictions give Physics Letters A the edge over other journals in the field.
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